TY - JOUR
T1 - Carbon-incorporated Fe3O4nanoflakes
T2 - high-performance faradaic materials for hybrid capacitive deionization and supercapacitors
AU - Chen, Lei
AU - Xu, Xingtao
AU - Wan, Lijia
AU - Zhu, Guang
AU - Li, Yanjiang
AU - Lu, Ting
AU - Albaqami, Munirah D.
AU - Pan, Likun
AU - Yamauchi, Yusuke
N1 - Publisher Copyright:
© the Partner Organisations.
PY - 2021/4/21
Y1 - 2021/4/21
N2 - Here, we introduce a new strategy using urea for the synthesis of carbon-incorporated 2D Fe3O4 (2D-Fe3O4/C) nanoflakes under solvothermal conditions with the following pyrolysis process under an inert atmosphere. Thanks to the structural advantages of 2D-Fe3O4/C, including 2D flakes providing a larger accessible surface area and exposing more active sites, as well as carbon incorporation promoting electrical conductivity for faster charge transfer, the 2D-Fe3O4/C displays a high specific capacitance of 386 F g-1 at 1 A g-1 in a three-electrode system. More importantly, when further assembled into a hybrid supercapacitor with pre-synthesized NiCo-layered double hydroxides as positive electrodes, the assembled supercapacitor device delivers a high-energy density of 32.5 W h kg-1 at 400 W kg-1 and little capacitance loss with bending angles ranging from 0° to 180°. As another capacitive application in desalination, 2D-Fe3O4/C also shows a high desalination capacity of 28.5 mg g-1 over 7.5 min, which suggests a very high mean desalination rate of 3.8 mg g-1 min-1. Our results not only highlight the significance of 2D metal oxide nanosheets/nanoflakes, but also hold great potential for high-performance capacitive applications in supercapacitors and desalination.
AB - Here, we introduce a new strategy using urea for the synthesis of carbon-incorporated 2D Fe3O4 (2D-Fe3O4/C) nanoflakes under solvothermal conditions with the following pyrolysis process under an inert atmosphere. Thanks to the structural advantages of 2D-Fe3O4/C, including 2D flakes providing a larger accessible surface area and exposing more active sites, as well as carbon incorporation promoting electrical conductivity for faster charge transfer, the 2D-Fe3O4/C displays a high specific capacitance of 386 F g-1 at 1 A g-1 in a three-electrode system. More importantly, when further assembled into a hybrid supercapacitor with pre-synthesized NiCo-layered double hydroxides as positive electrodes, the assembled supercapacitor device delivers a high-energy density of 32.5 W h kg-1 at 400 W kg-1 and little capacitance loss with bending angles ranging from 0° to 180°. As another capacitive application in desalination, 2D-Fe3O4/C also shows a high desalination capacity of 28.5 mg g-1 over 7.5 min, which suggests a very high mean desalination rate of 3.8 mg g-1 min-1. Our results not only highlight the significance of 2D metal oxide nanosheets/nanoflakes, but also hold great potential for high-performance capacitive applications in supercapacitors and desalination.
UR - https://www.scopus.com/pages/publications/85102835408
U2 - 10.1039/d0qm00946f
DO - 10.1039/d0qm00946f
M3 - 文章
AN - SCOPUS:85102835408
SN - 2052-1537
VL - 5
SP - 3480
EP - 3488
JO - Materials Chemistry Frontiers
JF - Materials Chemistry Frontiers
IS - 8
ER -